WO1999026169A1 - Method and apparatus to connect a general purpose computer to a special purpose system - Google Patents

Method and apparatus to connect a general purpose computer to a special purpose system Download PDF

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Publication number
WO1999026169A1
WO1999026169A1 PCT/US1998/024480 US9824480W WO9926169A1 WO 1999026169 A1 WO1999026169 A1 WO 1999026169A1 US 9824480 W US9824480 W US 9824480W WO 9926169 A1 WO9926169 A1 WO 9926169A1
Authority
WO
WIPO (PCT)
Prior art keywords
transducer
syntactic
sampled data
data
åose
Prior art date
Application number
PCT/US1998/024480
Other languages
French (fr)
Inventor
Anurag Mendhekar
Mohan Vishwanath
Shinn-Der Lee
Original Assignee
Online Anywhere
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Online Anywhere filed Critical Online Anywhere
Priority to DE69833565T priority Critical patent/DE69833565T2/en
Priority to EP98960236A priority patent/EP1029294B1/en
Priority to AU15883/99A priority patent/AU1588399A/en
Priority to NZ504545A priority patent/NZ504545A/en
Priority to JP2000521461A priority patent/JP2001523867A/en
Priority to BR9815314-5A priority patent/BR9815314A/en
Publication of WO1999026169A1 publication Critical patent/WO1999026169A1/en
Priority to NO20002448A priority patent/NO20002448L/en
Priority to HK01103469A priority patent/HK1032834A1/en

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Classifications

    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F40/00Handling natural language data
    • G06F40/20Natural language analysis
    • G06F40/205Parsing
    • G06F40/221Parsing markup language streams
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F16/00Information retrieval; Database structures therefor; File system structures therefor
    • G06F16/90Details of database functions independent of the retrieved data types
    • G06F16/95Retrieval from the web
    • G06F16/957Browsing optimisation, e.g. caching or content distillation
    • G06F16/9577Optimising the visualization of content, e.g. distillation of HTML documents
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F40/00Handling natural language data
    • G06F40/10Text processing
    • G06F40/12Use of codes for handling textual entities
    • G06F40/151Transformation
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F40/00Handling natural language data
    • G06F40/20Natural language analysis
    • G06F40/205Parsing
    • G06F40/211Syntactic parsing, e.g. based on context-free grammar [CFG] or unification grammars
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/2866Architectures; Arrangements
    • H04L67/30Profiles
    • H04L67/303Terminal profiles
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/50Network services
    • H04L67/51Discovery or management thereof, e.g. service location protocol [SLP] or web services
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/50Network services
    • H04L67/55Push-based network services
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L9/00Cryptographic mechanisms or cryptographic arrangements for secret or secure communications; Network security protocols
    • H04L9/40Network security protocols
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • H04L12/2803Home automation networks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • H04L12/2803Home automation networks
    • H04L12/2816Controlling appliance services of a home automation network by calling their functionalities
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/01Protocols
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L69/00Network arrangements, protocols or services independent of the application payload and not provided for in the other groups of this subclass
    • H04L69/30Definitions, standards or architectural aspects of layered protocol stacks
    • H04L69/32Architecture of open systems interconnection [OSI] 7-layer type protocol stacks, e.g. the interfaces between the data link level and the physical level
    • H04L69/322Intralayer communication protocols among peer entities or protocol data unit [PDU] definitions
    • H04L69/329Intralayer communication protocols among peer entities or protocol data unit [PDU] definitions in the application layer [OSI layer 7]

Definitions

  • the present invention relates generally to computer software and more particularly to a versatile software language tailoring the output from a general purpose computer to control a special purpose system, such as a consumer electronic appliance.
  • Previous methods to drive consumer appliances using a computer server are typically based on software and hardware that are specifically tailored to the appliances.
  • the three widely known approaches are the network computer approach, the proprietary format approach and the small but complete computer approach. These approaches are typically not scalable and are relatively inflexible. They attempt to achieve a tightly coupled convergence of the computer and consumer electronics. Each time when a new application is added or a new appliance is included, a new product tying the computer to the electronics has to be built, typically from scratch.
  • the present invention is on methods and apparatus that will speed up the convergence of computing and consumer electronics.
  • the present invention allows a computer to control almost any type of consumer electronics in an efficient manner, all the way to the application level.
  • outputs from the computer include both syntactic data, such as textual programs, and sampled data, such as images.
  • the outputs are in a general format, with the intent of being used by another general pu ⁇ ose computer, not by different electronic appliances with different characteristics.
  • the present invention is on a transducer that changes both the syntactic and the sampled data from the outputs of a general pu ⁇ ose computer to tailor them for special pu ⁇ ose systems or appliances.
  • Transducers can be composed. This permits one to build modular transducers, which allows extensibility of systems and reuse of transducers.
  • the transducer includes two transducer modules.
  • the first module is coupled to the general computer to receive a set of syntactic and sampled data from the computer.
  • the module then transforms the received data to generate a different set of syntactic and sampled data.
  • the second module receives the set of syntactic and sampled data from the first module, and transforms the received data into yet another set of syntactic and sample data, which are different from the other two sets of syntactic and sampled data to control the special pu ⁇ ose system.
  • transducer modules there are five broad categories of transducer modules, namely, transport, display, user-interface, mapping and control modules. Using one or more transducer modules, data can be transduced, off-line or in real-time, for an input/output device.
  • FIG. 1 shows an example of a general pu ⁇ ose computer controlling special pu ⁇ ose systems based on the present invention.
  • FIG. 2 illustrates an example of an implementation model of a transducer of the present invention.
  • FIG. 3 shows an example of applications mapped or designed using the present invention inheriting the properties of the invented transduction methods.
  • FIGS. 1-3 Same numerals in FIGS. 1-3 are assigned to similar elements in all the figures. Embodiments of the invention are discussed below with reference to FIGS. 1-3. However, those skilled in the art will readily appreciate that the detailed description given herein with respect to these figures is for explanatory pu ⁇ oses as the invention extends beyond these limited embodiments.
  • FIG. 1 shows an example of a general pu ⁇ ose computer 101 controlling special pu ⁇ ose systems, such as a portable display 103, a television 105, a set-top box 107, and a home security system 109, based on the present invention.
  • the computer 101 may be connected to the Internet 111.
  • a special pu ⁇ ose system may include one or more embedded controllers.
  • the present invention is illustrated through the design and implementation of a transducer for transforming a device independent markup language to a device dependent markup language, using HTML as an example.
  • This markup language example is intended to clarify the present invention, and is purely exemplary of using the invention.
  • Converting a general pu ⁇ ose markup output, such as HTML, to a device-dependent output has a wide range of applications.
  • the device-dependent outputs can be for interactive television, printing documents from the Web and reading documents on a Personal Digital Assistant (PDA).
  • PDA Personal Digital Assistant
  • the transducers in the present invention can harness the power of a device-independent markup language to fit the needs of specific output and interaction devices. Based on the transducers, a given general pu ⁇ ose markup language can be converted into a layout language that is tuned to a specific output device.
  • Markup is defined as any means of making explicit an inte ⁇ retation of a text.
  • Markup language is defined as a set of markup conventions used together for encoding texts.
  • a markup language specifies what markup is allowed, what markup is required, how markup is to be distinguished from text, and what the markup means.
  • Languages like HTML specify the first three while the HTML documentation provides the meaning of the markups.
  • Markup languages were initially used to make annotations or other marks within a text intended to instruct a compositor or typist how a particular piece of text was to be laid out or printed. See, for example, http://www.w3.org MarkUp.
  • Examples include wavy underlining to indicate boldface, special symbols for passages to be omitted or printed in a particular font and so forth.
  • the term was extended to cover all sorts of special markup codes inserted into electronic texts to govern formatting, printing, or other processing.
  • markup languages originated as a way of structuring text documents, they have moved on to provide a way to specify the structure of rich interactive multimedia documents. These current generation markup languages not only structure the appearance of the document but also structure the interactivity of the document.
  • the current generation of popular markup languages, for e.g. HTML and VRML, are quite flexible and powerful since they are general pu ⁇ ose, system independent and device independent.
  • markup languages Due to their generality and device and system independence, markup languages provide the power and flexibility needed to be used as the standard way of describing documents and also as a common format for exchanging documents. This power and flexibility comes at the expense of tailoring the output for special pu ⁇ ose systems. In other words, unlike layout and/or display languages like Postscript, markup languages do not exactly specify how a page is to be displayed or printed without losing its flexibility and generality.
  • the following examples show a language that can automate the process of tailoring general pu ⁇ ose HTML to device-specific HTML based on transducers.
  • the transducer is designed to enable HTML-to-HTML transduction. It is looked upon as an extension to an existing programming language. Java is used in the following example.
  • transducer One feature of the transducer is that it enables a programmer to specify transductions from HTML to a given target language that is based on SGMLj ⁇ cite] like syntax, using a style that fits in naturally with HTML. This allows the programmer to program these transductions at a very high level of abstraction which allows complex transductions to be written quickly and with maximum reliability.
  • Each transducer defines a tranduction function that maps incoming (SGML based) input-language into a target language.
  • Each transducer consists of a set of transduction methods that are translations defined on individual tags of the input language.
  • the input to a transducer method is syntactic and sampled data that correspond to the tag on which the method is defined.
  • the output of a transducer method can be another set of syntactic and sampled data of the target language.
  • syntactic data mean data that include syntax, such as textural data or programming language.
  • Sampled data mean data that is sampled, such as bitmaps, images, audio or video signals.
  • the transducer contains the following transducer method:
  • the transducer also allows helper methods, defined as regular Java methods, to be included.
  • helper methods defined as regular Java methods
  • newFace and can be translateSize defined as helper methods in the transducer.
  • the complete transducer can look like the following:
  • the compiler translates the transducer into plain Java classes which can then be integrated into any application.
  • the following section illustrates various features of the transducer.
  • transduction The basic syntax of transduction is designed to allow a programmer to naturally express markup-language transductions. For example, to translate the fonts of the incoming markup-language, the following transducer method could be used.
  • This example illustrates three features.
  • the body of the method above is essentially in the markup language syntax. Except for the code within ' ⁇ % ... % ⁇ ', all other code is put out directly as the result of the method. The code within ' ⁇ % ... % ⁇ ' is evaluated and the result of this evaluation is inserted into the output.
  • a predefined constant .content is provided. It stands for the content between the begin and end markers of the tag on which the method is defined.
  • helper f nctions to be used within the evaluated code. These helper functions may be defined within the body of the transducer itself.
  • tags are required to have content. These tags are known as empty tags. The above example essentially differs from the following, which is intended to transduce an HR tag, which is known to be empty. In the following, the content and end marker are ignored. HRwidth ⁇
  • Imperative update of the parse tree is supported. This is useful when only some attributes of a node need to be changed (destructively).
  • the following syntax illustrates the usage.
  • the special variable Content is used to indicate the content between corresponding begin and end tags. The advantage of this feature is that it reduces the load on the memory management system.
  • the transductions support what are known in attribute grammar theory as inherited attributes. These are values that are passed down from parents to their children during a typical top-down traversal of the parse tree.
  • inherited attributes are values that are passed down from parents to their children during a typical top-down traversal of the parse tree.
  • an enclosing variable ef can be accessed by all the transducer methods that are invoked on elements enclosed between the begin and end markers of a frameset. These methods can use this variable to access information about their syntactic context. Moreover, if the frameset element is nested, accessing ef returns the value associated with the closest enclosing frameset element.
  • Transducers can be composed. This composition is achieved by straightforward (OO) inheritance. This is an effective way of combining the effects of unrelated transductions. If however, the child transducer wants to define a transduction different from its parent, there has to be a resolution of what the result finally should be. There are two options: either combine the results somehow(composition), or completely ignore the parent's transduction (overriding). There are three kinds of composition: child's result is processed by parent (beforesuper), parent's result is processed by child (aftersuper), or arbitrary (call super directly from within the body of the child's method). These three are illustrated as follows:
  • this method will be called first and the result of this method will sent as the argument to the super. If the method is not idempotent with respect to the tag (i.e., it does not return an element with the same tag as the input), an error should be signaled at runtime. The result of the method is the result returned by the super.
  • the method first calls super and then bind the result of the value returned by the super to the current set of arguments. If the super is not idempotent with respect to the tag, this method should signal an error at runtime. Default is to override. If a different kind of composition is preferred, within the body of the transducer methods, super. translateFONT((7) can be used.
  • Analyzers can be idempotent transducers. Analyzers contain enclosing attributes and initial Java code. Transducers can inherit from analyzers. The results of inheriting analyzers from transducers are undefined
  • the transducer can be implemented as an extension to Java. It subsumes the
  • the transducer code is translated by a source-to-source translation into Java.
  • the Java code can then be compiled, and linked with the transducer runtime libraries before it can be run.
  • FIG. 2 illustrates an example of the implementation model of a transducer.
  • the transducer 200 is split into transducer-specific 204 and non-transducer specific 202 sections.
  • Transducer specific sections 204 include transducer methods, while non-transducer specific sections 202 include the helper functions.
  • the non-transducer specific sections are passed through unmodified by the compiler.
  • the transducer-specific portions are translated into Java.
  • transducer-specific sections involves a number of steps.
  • the runtime libraries will invoke the appropriate method when a given tag is encountered.
  • Java code 206 can be compiled and linked in with the runtime library 208 to get runnable code 210.
  • the transducer runtime-library consists of a markup-language parser and a set of methods that are called when specific tags are encountered. The default action for these methods is to do nothing, i.e., they are identity transformations. A compiled transducer program overrides these methods.
  • Identifier java-code
  • the above transduce can include a number of transducer modules, including transport transducer modules, display transducer modules, user-interface transducer modules, mapping transducer modules and control transducer modules.
  • Transport transducer modules are used to automatically modify the transmission formats and semantics of digital data. They are primarily used to ensure that the application can be decomposed according to the needs and capabilities of the I/O devices. This is particularly important to ensure scalability of the application across various platforms (for example, the same application running on a Television and a phone).
  • Magnifier Used for scaling the output of the application such that it is more suitable for an output device.
  • UI transducer modules are used to map the user interface that an application was built to an user interface that is amenable to the I/O device used as the interaction device.
  • This module wraps around an application and provides a PopUp based user- interface. This is useful to save screen real estate and to increase the ease of use.
  • This module adds audio feedback to User Interfaces.
  • This module adds animation to static User Interfaces.
  • Context Sensitive UI This module changes the user interface such that it explicitly represents the data that is currently being displayed.
  • the UI is derived from the data that it is an interface to.
  • mapping Transducer modules Often applications are designed such that without a major remapping of their I/O, they cannot be used on most platforms. For example, HTML pages with frames are not easy to view on displays with low resolution.
  • the mapping transducer is used to remap the applications I/O into a form that is suitable for the I/O device.
  • This module is used for re-mapping HTML pages that contain frames such that they are removed from the HTML page or all the frames are merged into one non-frame HTML page or all the frames, but the main frame, is hidden in the form of PopUp frames.
  • This module is used for re-mapping tables such that they are tailored for I/O device.
  • This module remaps the data such that they do not require horizontal scrolling.
  • this module is used for automatically generating a site map of arbitrary depth automatically.
  • this transducer Given a website, this transducer produces a playback version of that web site. It uses either a breadth first or a depth first or a combination of the two or a random walk to determine the play order. It is particulary useful when applied to customized news applications.
  • control transducer modules allow the computer to control consumer appliances and collect data from them. Transduction is required since there are multiple control protocols and media access protocols for consumer appliances.
  • VCR control This is a module to control a Video Cassette Recorder.
  • the transport transducer modules can be considered as output transducer modules, which can be the module that is connected to the special pu ⁇ ose device.
  • transducer module Another type of transducer module is the decoding transducer module. It is for decoding the transduced outputs to be used by the special pu ⁇ ose device. For example, the decoding transducer module transforms syntactic and sample data into bits with color to be displayed on a television screen. Thus, the outputs of the decoding transducer can be just sampled data.
  • the present invention discloses a transducer with at least two transducer modules. Each module transforms its received syntactic and sample data. In one embodiment, the transducer includes more than two modules, and there are modules that just modify the syntactic or the sampled data, but not both.
  • each module successively refines its received data to be more applicable to control a special pu ⁇ ose system.
  • the modules in the present invention can be re-used.
  • a series of modules may be used to control images on a color television, and another series for a monochrome television. All of the modules in the two series may be identical, except one, which is the one designating the color of each pixel. After one has implemented the first series, it would be easy to implement the second.
  • This specification describes a transducer module modifying both syntactic data and sampled data.
  • a mini-module transduces syntactic data and another mini-module transduces sampled data; both mini-modules together constitute a transducer module in the present invention.
  • the present invention is also applicable in reverse.
  • the present invention can be used to transduce syntactic and sampled data from a special pu ⁇ ose system to control a general pu ⁇ ose system.
  • a special pu ⁇ ose system For example, blanking signals from a television can be transduced and displayed as HTML on a computer.
  • FIG. 3 shows such an example, where an Internet Browser 120 designed or mapped using the present invention can run entirely on a personal computer 122, partly on a personal computer and partly on a set-top box 124 or entirely on a set-top box 124.

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Abstract

A transducer for transforming a set of syntactic and sampled data from a general purpose system to control a special purpose system. The transducer includes a first and a second transducer modules. The first transducer module is coupled to the general purpose system for receiving the syntactic and sampled data from the general purpose system, and to transform the received data into a different set of syntactic and sampled data. The second transducer module is coupled to the first transducer module for receiving the syntactic and sampled data generated by the first transducer module, and transforming the received data into another set of syntactic and sample data that are different from the other two sets of syntactic and sampled data to control the special purpose system.

Description

METHOD AND APPARATUS
TO CONNECT
A GENERAL PURPOSE COMPUTER TO
A SPECIAL PURPOSE SYSTEM
BACKGROUND OF THE INVENTION
The present invention relates generally to computer software and more particularly to a versatile software language tailoring the output from a general purpose computer to control a special purpose system, such as a consumer electronic appliance.
With computers gradually permeating into every home, the convergence of computing and consumer electronics has finally started to happen. This convergence has many compelling applications in areas such as education, entertainment, home security and home automation. However, in order to enhance the convergence, a general purpose computer should be able to control different types of electronics seamlessly and efficiently. This means that various consumer electronic appliances, such as the television, a portable display, a VCR or a camera, should be easily used as input/output extensions of the computer for specific applications. This also means that the computer should be acting somewhat as a server for these appliances.
Previous methods to drive consumer appliances using a computer server are typically based on software and hardware that are specifically tailored to the appliances. The three widely known approaches are the network computer approach, the proprietary format approach and the small but complete computer approach. These approaches are typically not scalable and are relatively inflexible. They attempt to achieve a tightly coupled convergence of the computer and consumer electronics. Each time when a new application is added or a new appliance is included, a new product tying the computer to the electronics has to be built, typically from scratch.
There are also a number of options to connect consumer electronic devices to each other and to computers using various connectivity solutions. The two most popular ones are the Universal Serial Bus and the IEEE 1394 (also known as FireWire). These technologies mainly deal with the physical layer (the media) and the link layer protocols and do not deal with applications. The lack of new applications and application porting have been a major problem facing the widespread deployment of these connectivity standards.
It should be apparent that there is still a need of methods and apparatus for a general puφose computer to control different types of special puφose systems in an efficient manner.
SUMMARY OF THE INVENTION
The present invention is on methods and apparatus that will speed up the convergence of computing and consumer electronics. The present invention allows a computer to control almost any type of consumer electronics in an efficient manner, all the way to the application level.
Typically outputs from the computer include both syntactic data, such as textual programs, and sampled data, such as images. The outputs are in a general format, with the intent of being used by another general puφose computer, not by different electronic appliances with different characteristics. The present invention is on a transducer that changes both the syntactic and the sampled data from the outputs of a general puφose computer to tailor them for special puφose systems or appliances.
Some of the advantages of the present invention include: 1. Generality: The invention can be applied to any application and any input/output device. 2. Scalability : The invention permits the application to reside, in various proportions, on the computer or on the consumer appliance.
3. Portability: The invention is useful and can run on full-blown computers or on embedded devices.
4. Composability: Transducers can be composed. This permits one to build modular transducers, which allows extensibility of systems and reuse of transducers.
5. Applications designed or mapped using the invented transduction methods can inherit the properties of transduction, such as the four benefits described directly above.
The invented transduction technique combines the strengths of automatic translation (languages) and transcoding (signals) based on an invented language. In one embodiment, the transducer includes two transducer modules. The first module is coupled to the general computer to receive a set of syntactic and sampled data from the computer. The module then transforms the received data to generate a different set of syntactic and sampled data. Then, the second module receives the set of syntactic and sampled data from the first module, and transforms the received data into yet another set of syntactic and sample data, which are different from the other two sets of syntactic and sampled data to control the special puφose system.
In one embodiment, there are five broad categories of transducer modules, namely, transport, display, user-interface, mapping and control modules. Using one or more transducer modules, data can be transduced, off-line or in real-time, for an input/output device.
Note that the language used in the specification has been principally selected for readability and instructional purposes, and may not have been selected to delineate or circumscribe the inventive subject matter. Also, the features and advantages described in the specification are not all-inclusive. Other aspects and advantages of the present invention will become apparent to one of ordinary skill in the art, in view of the specification, which illustrates by way of example the principles of the invention. BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 shows an example of a general puφose computer controlling special puφose systems based on the present invention.
FIG. 2 illustrates an example of an implementation model of a transducer of the present invention.
FIG. 3 shows an example of applications mapped or designed using the present invention inheriting the properties of the invented transduction methods.
Same numerals in FIGS. 1-3 are assigned to similar elements in all the figures. Embodiments of the invention are discussed below with reference to FIGS. 1-3. However, those skilled in the art will readily appreciate that the detailed description given herein with respect to these figures is for explanatory puφoses as the invention extends beyond these limited embodiments.
DETAILED DESCRIPTION OF THE INVENTION
FIG. 1 shows an example of a general puφose computer 101 controlling special puφose systems, such as a portable display 103, a television 105, a set-top box 107, and a home security system 109, based on the present invention. The computer 101 may be connected to the Internet 111. Note that a special puφose system may include one or more embedded controllers.
The present invention is illustrated through the design and implementation of a transducer for transforming a device independent markup language to a device dependent markup language, using HTML as an example. This markup language example is intended to clarify the present invention, and is purely exemplary of using the invention.
Converting a general puφose markup output, such as HTML, to a device-dependent output has a wide range of applications. The device-dependent outputs can be for interactive television, printing documents from the Web and reading documents on a Personal Digital Assistant (PDA). The transducers in the present invention can harness the power of a device-independent markup language to fit the needs of specific output and interaction devices. Based on the transducers, a given general puφose markup language can be converted into a layout language that is tuned to a specific output device.
Markup is defined as any means of making explicit an inteφretation of a text. Markup language is defined as a set of markup conventions used together for encoding texts. A markup language specifies what markup is allowed, what markup is required, how markup is to be distinguished from text, and what the markup means. Languages like HTML specify the first three while the HTML documentation provides the meaning of the markups.
Markup languages were initially used to make annotations or other marks within a text intended to instruct a compositor or typist how a particular piece of text was to be laid out or printed. See, for example, http://www.w3.org MarkUp.
Examples include wavy underlining to indicate boldface, special symbols for passages to be omitted or printed in a particular font and so forth. As the formatting and printing of texts was automated, the term was extended to cover all sorts of special markup codes inserted into electronic texts to govern formatting, printing, or other processing.
While markup languages originated as a way of structuring text documents, they have moved on to provide a way to specify the structure of rich interactive multimedia documents. These current generation markup languages not only structure the appearance of the document but also structure the interactivity of the document. The current generation of popular markup languages, for e.g. HTML and VRML, are quite flexible and powerful since they are general puφose, system independent and device independent.
Due to their generality and device and system independence, markup languages provide the power and flexibility needed to be used as the standard way of describing documents and also as a common format for exchanging documents. This power and flexibility comes at the expense of tailoring the output for special puφose systems. In other words, unlike layout and/or display languages like Postscript, markup languages do not exactly specify how a page is to be displayed or printed without losing its flexibility and generality.
While this lack of complete control over the output might seem like a disadvantage, it is in fact a boon to the current generation of widely used markup languages, like HTML and VRML. This is because the number of possible output devices (display and/or interaction) that consume a document published in one of these markup languages is on the rise, for example, TVs, PDAs and phones. Therefore for certain puφoses, it is desirable to have a common publishing format, which is automatically converted to an appropriate display language on the output/interaction device. HTML and VRML are emerging as one of the most popular publishing formats for documents. However, it is important to have tools to flexibly convert them for various I/O devices.
The following examples show a language that can automate the process of tailoring general puφose HTML to device-specific HTML based on transducers.
The transducer is designed to enable HTML-to-HTML transduction. It is looked upon as an extension to an existing programming language. Java is used in the following example.
One feature of the transducer is that it enables a programmer to specify transductions from HTML to a given target language that is based on SGMLjλcite] like syntax, using a style that fits in naturally with HTML. This allows the programmer to program these transductions at a very high level of abstraction which allows complex transductions to be written quickly and with maximum reliability.
Each transducer defines a tranduction function that maps incoming (SGML based) input-language into a target language. Each transducer consists of a set of transduction methods that are translations defined on individual tags of the input language. The input to a transducer method is syntactic and sampled data that correspond to the tag on which the method is defined. The output of a transducer method can be another set of syntactic and sampled data of the target language. In this invention, syntactic data mean data that include syntax, such as textural data or programming language. Sampled data mean data that is sampled, such as bitmaps, images, audio or video signals.
As an example, to carry out a translation of fonts, the transducer contains the following transducer method:
FONT face size{ //This transducer method is defined on the "FONT" tag and is interested in two arguments of the
// FONT tag: face "and" "size".
//This is the output element:
//The code between {% a %} is evaluated and the result is inserted in the output. <FONT face={% newFace(getFONTface())%} size={% translateSize(getFONTsizeO) %}>
//getFONTfaceO and getFONTsizeO extract the argument values for face and size
code content //Indicates that transduced content between begin and
//end tags must be inserted here < FONT>
}
The transducer also allows helper methods, defined as regular Java methods, to be included. In the above example, and newFace and can be translateSize defined as helper methods in the transducer. The complete transducer can look like the following:
public transducer FontChanger { FONT face size{
%% //Begin the helper functions. String newFace(String face){ ... //fix the face
} String translateSize( String size){ ... //fix the size
} }
The compiler translates the transducer into plain Java classes which can then be integrated into any application. The following section illustrates various features of the transducer.
Markup-Language Transduction
The basic syntax of transduction is designed to allow a programmer to naturally express markup-language transductions. For example, to translate the fonts of the incoming markup-language, the following transducer method could be used.
FONT face size{
<FONT face={% newFace(getFONTfaceQ)%} size={% translateSize(getFONTsizeO) %}>
.content. //Indicates that transduced content between begin and
//end tags must be inserted here </FONT>
}
This example illustrates three features. First, the body of the method above is essentially in the markup language syntax. Except for the code within '{% ... %}', all other code is put out directly as the result of the method. The code within '{% ... %}' is evaluated and the result of this evaluation is inserted into the output. Second, a predefined constant .content, is provided. It stands for the content between the begin and end markers of the tag on which the method is defined. Third, it allows helper f nctions to be used within the evaluated code. These helper functions may be defined within the body of the transducer itself.
Since .content, and </FONT> will be used regularly, the following syntax is allowed and is the same as above:
FONT face size{
<FONT face={% newFace(getFONTface())%} size={% translateSize(getFONTsize0) %}> }
Not all tags are required to have content. These tags are known as empty tags. The above example essentially differs from the following, which is intended to transduce an HR tag, which is known to be empty. In the following, the content and end marker are ignored. HRwidth{
<HRwidth={% ... %} NOSHADE>
}
Escape mechanism to directly access the parse tree structure
Sometimes, it is easier to directly manipulate the parse tree of the input. The following example represents the syntax that shows how this can be done. HR (alpha){
{% return makeNewHR(alpha) %} }
Here the argument in parentheses, alpha, is bound to the parse tree. The output of this method is the value returned by the code in '{% ... %}' .
Sometimes simple pattern matching based translation is not enough and it is desirable that direct manipulations to the tree structure be embeddable in the pattern matching translation. The following example illustrates how to do this.
HR width (alpha){
<HR width-{% doSomething(alpha) %}>
}
Imperative features for before and after processing
These features are used in the context where some sort of initialization needs to be done for translation. It is also useful when the transducer is actually an analyzer. Pieces of code can be introduced before and after the translation. For the direct-tree manipulation syntax, this feature is not necessary. The following examples illustrate the usage.
Frame some args ... {
Initially {% //do the before processing ...
%}
<FRAME some' args' ....>
}
Similarly for after:
Frame some args ... { <FRAME some' args' ...> finally {% //do the after processing .
%} }
It is possible to have both intial and final code in the same transducer method.
In-place updates of markups
Imperative update of the parse tree is supported. This is useful when only some attributes of a node need to be changed (destructively). The following syntax illustrates the usage. The special variable Content is used to indicate the content between corresponding begin and end tags. The advantage of this feature is that it reduces the load on the memory management system. FONT face size{
Face={% ... %}; S_ze={% ... %}; Content={% ... %}; }
Exchanging values between different transducer methods
The transductions support what are known in attribute grammar theory as inherited attributes. These are values that are passed down from parents to their children during a typical top-down traversal of the parse tree. We use the keyword enclosing to denote inherited attributes because it is typically used in transductions of outer level elements to record information provided by nested nodes/elements.
Frameset args ... { enclosing Frameset ef={% makeNewFrameset(...) %}; //The Frameset' here is a type Declaration
}
In the above example, an enclosing variable ef can be accessed by all the transducer methods that are invoked on elements enclosed between the begin and end markers of a frameset. These methods can use this variable to access information about their syntactic context. Moreover, if the frameset element is nested, accessing ef returns the value associated with the closest enclosing frameset element. Composition of transducers
Transducers can be composed. This composition is achieved by straightforward (OO) inheritance. This is an effective way of combining the effects of unrelated transductions. If however, the child transducer wants to define a transduction different from its parent, there has to be a resolution of what the result finally should be. There are two options: either combine the results somehow(composition), or completely ignore the parent's transduction (overriding). There are three kinds of composition: child's result is processed by parent (beforesuper), parent's result is processed by child (aftersuper), or arbitrary (call super directly from within the body of the child's method). These three are illustrated as follows:
beforesuper FONT face size{
This means that this method will be called first and the result of this method will sent as the argument to the super. If the method is not idempotent with respect to the tag (i.e., it does not return an element with the same tag as the input), an error should be signaled at runtime. The result of the method is the result returned by the super.
aftersuper FONT face size{
Here, the method first calls super and then bind the result of the value returned by the super to the current set of arguments. If the super is not idempotent with respect to the tag, this method should signal an error at runtime. Default is to override. If a different kind of composition is preferred, within the body of the transducer methods, super. translateFONT(...) can be used.
Analyzers
In order to syntactically differentiate the part of the transducer that analyzes from those that transduce, the keyword analyzer is used instead of the word transducer. Analyzers can be idempotent transducers. Analyzers contain enclosing attributes and initial Java code. Transducers can inherit from analyzers. The results of inheriting analyzers from transducers are undefined
The transducer can be implemented as an extension to Java. It subsumes the
Java syntax. The transducer code is translated by a source-to-source translation into Java. The Java code can then be compiled, and linked with the transducer runtime libraries before it can be run.
FIG. 2 illustrates an example of the implementation model of a transducer.
In the first step, the transducer 200 is split into transducer-specific 204 and non-transducer specific 202 sections. Transducer specific sections 204 include transducer methods, while non-transducer specific sections 202 include the helper functions. The non-transducer specific sections are passed through unmodified by the compiler. The transducer-specific portions are translated into Java.
The translation of transducer-specific sections involves a number of steps. First, convert method declarations into Java methods. The runtime libraries will invoke the appropriate method when a given tag is encountered. Second, translate markup-language based bodies into code that constructs parse trees. The embedded Java code in the bodies is inserted into this code.
Finally, the two Java sections are merged and the resulting Java code 206 can be compiled and linked in with the runtime library 208 to get runnable code 210.
The transducer runtime-library consists of a markup-language parser and a set of methods that are called when specific tags are encountered. The default action for these methods is to do nothing, i.e., they are identity transformations. A compiled transducer program overrides these methods.
An example of the syntax of a transducer is as follows:
Transducer
[public] [transducer | analyzer] identifier [extends identifier]! Transducer-method a %% java-code
%%
} Transducer-method
[beforesuper | aftersuper] Input-pattern {
Identifier = java-code; ...
I
[java-code] [ Attribute-declaration... ] [initially j ava-code] output-pattern [finally java-code]
} Input-pattern
Tag identifier ... (identifier)
Attribute-declaration
enclosing type identifier [= java-expression] Output-pattern
[HTMLString | java-code | .content.] ... Java-code
%! any-java-code }%
The above transduce can include a number of transducer modules, including transport transducer modules, display transducer modules, user-interface transducer modules, mapping transducer modules and control transducer modules.
Transport Transducer modules
Transport transducer modules are used to automatically modify the transmission formats and semantics of digital data. They are primarily used to ensure that the application can be decomposed according to the needs and capabilities of the I/O devices. This is particularly important to ensure scalability of the application across various platforms (for example, the same application running on a Television and a phone).
Display Transducer modules
They are used to modify the display characteristics of applications to match the display capability of the I/O device. Using display transducer modules, one can apply both syntactic and sampled data transformations to the application output.
Font remapping:
Used for changing the fonts such that they are more suitable for an output device.
Color Correction
Used for correcting the colors such that they are more suitable for an output device.
Magnifier Used for scaling the output of the application such that it is more suitable for an output device.
Flicker reduction
Used for reducing flicker artifacts in interlaced displays.
Image enhancement
Used for enhancing the image quality on inferior or distant displays. User-interface Transducer modules
UI transducer modules are used to map the user interface that an application was built to an user interface that is amenable to the I/O device used as the interaction device.
PopUp UIs
This module wraps around an application and provides a PopUp based user- interface. This is useful to save screen real estate and to increase the ease of use.
Audio feedback
This module adds audio feedback to User Interfaces.
Animated UI
This module adds animation to static User Interfaces.
Context Sensitive UI This module changes the user interface such that it explicitly represents the data that is currently being displayed. The UI is derived from the data that it is an interface to.
AutoScroll: This module adds hands-free scrolling capability to applications.
Mapping Transducer modules Often applications are designed such that without a major remapping of their I/O, they cannot be used on most platforms. For example, HTML pages with frames are not easy to view on displays with low resolution. The mapping transducer is used to remap the applications I/O into a form that is suitable for the I/O device.
Frames
This module is used for re-mapping HTML pages that contain frames such that they are removed from the HTML page or all the frames are merged into one non-frame HTML page or all the frames, but the main frame, is hidden in the form of PopUp frames.
Tables This module is used for re-mapping tables such that they are tailored for I/O device.
Horizontal Scroll Free
This module remaps the data such that they do not require horizontal scrolling.
Navigation Maps
Given any HTML document, this module is used for automatically generating a site map of arbitrary depth automatically.
AutoSurf,
Given a website, this transducer produces a playback version of that web site. It uses either a breadth first or a depth first or a combination of the two or a random walk to determine the play order. It is particulary useful when applied to customized news applications.
Control Transducer modules
As the name suggests, control transducer modules allow the computer to control consumer appliances and collect data from them. Transduction is required since there are multiple control protocols and media access protocols for consumer appliances.
Power
This is a module to control the power consumption of devices.
VCR control This is a module to control a Video Cassette Recorder.
Security
This is a module to access and modify security systems.
In the above modules, the transport transducer modules can be considered as output transducer modules, which can be the module that is connected to the special puφose device.
Another type of transducer module is the decoding transducer module. It is for decoding the transduced outputs to be used by the special puφose device. For example, the decoding transducer module transforms syntactic and sample data into bits with color to be displayed on a television screen. Thus, the outputs of the decoding transducer can be just sampled data. The present invention discloses a transducer with at least two transducer modules. Each module transforms its received syntactic and sample data. In one embodiment, the transducer includes more than two modules, and there are modules that just modify the syntactic or the sampled data, but not both.
In one embodiment, there is a number of modules, connected sequentially, one after another. Each module successively refines its received data to be more applicable to control a special puφose system.
The modules in the present invention can be re-used. For example, a series of modules may be used to control images on a color television, and another series for a monochrome television. All of the modules in the two series may be identical, except one, which is the one designating the color of each pixel. After one has implemented the first series, it would be easy to implement the second.
This specification describes a transducer module modifying both syntactic data and sampled data. In one embodiment, a mini-module transduces syntactic data and another mini-module transduces sampled data; both mini-modules together constitute a transducer module in the present invention.
The present invention is also applicable in reverse. In other words, the present invention can be used to transduce syntactic and sampled data from a special puφose system to control a general puφose system. For example, blanking signals from a television can be transduced and displayed as HTML on a computer.
As discussed above, applications designed or mapped using the invented transduction methods can inherit the properties of transduction, such as the benefits of generality, scalability, portability and composability. FIG. 3 shows such an example, where an Internet Browser 120 designed or mapped using the present invention can run entirely on a personal computer 122, partly on a personal computer and partly on a set-top box 124 or entirely on a set-top box 124.
Other embodiments of the invention will be apparent to those skilled in the art from a consideration of this specification or practice of the invention disclosed herein. It is intended that the specification and examples be considered as exemplary only, with the true scope and spirit of the invention being indicated by the following claims.

Claims

CLAIMSWe claim:
1. A transducer for transforming a set of syntactic and sampled data from a general puφose system to control a special puφose system, the transducer comprising: a first transducer module operationally coupled to the general puφose system for receiving the syntactic and sampled data from the general puφose system, and transforming the received data into a different set of syntactic and sampled data; and a second transducer module operationally coupled to the first transducer module for receiving the syntactic and sampled data generated by the first transducer module, and transforming the received data into another set of syntactic and sample data that are different from the other two sets of syntactic and sampled data to control the special puφose system.
2. A transducer as recited in Claim 1 wherein: the general puφose system is a computer, and the special puφose system is a television.
3. A transducer as recited in Claim 1 wherein: the set of syntactic and sampled data from the general puφose system are in HTML format.
4. A transducer for transforming a set of syntactic and sampled data from a special puφose system to control a general puφose system, the transducer comprising: a first transducer module operationally coupled to the special puφose system for receiving the syntactic and sampled data from the special puφose system, and transforming the received data into a different set of syntactic and sampled data; and a second transducer module operationally coupled to the first transducer module for receiving the syntactic and sampled data generated by the first transducer module, and transforming the received data into another set of syntactic and sample data that are different from the other two sets of syntactic and sampled data to control the general puφose system.
PCT/US1998/024480 1997-11-14 1998-11-16 Method and apparatus to connect a general purpose computer to a special purpose system WO1999026169A1 (en)

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EP98960236A EP1029294B1 (en) 1997-11-14 1998-11-16 Method and apparatus to connect a general purpose computer to a special purpose system
AU15883/99A AU1588399A (en) 1997-11-14 1998-11-16 Method and apparatus to connect a general purpose computer to a special purpose system
NZ504545A NZ504545A (en) 1997-11-14 1998-11-16 A transducer for transforming syntatic and sampled data to connect a general purpose computer to a special purpose system
JP2000521461A JP2001523867A (en) 1997-11-14 1998-11-16 Method and apparatus for connecting a general purpose computer to a special system
BR9815314-5A BR9815314A (en) 1997-11-14 1998-11-16 Transducer for transforming syntactic data series
NO20002448A NO20002448L (en) 1997-11-14 2000-05-11 Method and Device for Connecting a General Purpose Computer to a Special Purpose System
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DE69833565D1 (en) 2006-04-27
CN1113308C (en) 2003-07-02
EP1029294A1 (en) 2000-08-23
NO20002448L (en) 2000-07-13
US6108696A (en) 2000-08-22
BR9815314A (en) 2002-02-05
AU1588399A (en) 1999-06-07
JP2001523867A (en) 2001-11-27
NO20002448D0 (en) 2000-05-11
HK1032834A1 (en) 2001-08-03
KR20010024611A (en) 2001-03-26
CN1290370A (en) 2001-04-04
ATE318424T1 (en) 2006-03-15
KR100566598B1 (en) 2006-03-31
DE69833565T2 (en) 2006-08-10
ES2255191T3 (en) 2006-06-16
EP1029294B1 (en) 2006-02-22

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